Rémi Sieskind, Sophia Missoury, Clément Madru, Isciane Commenge, Germain Niogret, Marcel Hollenstein, Yannick Rondelez, Ludovic Sauguet, Ahmed Haouz, Pierre Legrand, Marc Delarue
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引用次数: 0
摘要
BsmI 是一种嗜热型 IIS 限制性内切酶,来自于嗜热脂肪芽孢杆菌(Bacillus stearothermophilus),具有独特的结构组成,在单个单体中包含两个不同的活性位点。它能识别非对称的 5'-GAATGC-3' 序列,从而精确地切割上下两条 DNA 链。通过合成生物学干预,BsmI 被改造成了 Nb.BsmI,一种裂解内切酶。在这里,我们引入了专为顶链裂解定制的 Nt*.BsmI,它对标准双链 DNA 没有活性,但对底链缺口 DNA 有活性,这表明了一种顺序裂解机制。与同源 DNA 反应前和反应后复合物的晶体结构显示了一个主要的构象变化,即一个可伸缩的环,它可能控制着活性位点的顺序可及性。X 射线结构揭示了二价金属离子在活性位点的位置以及 DNA 与蛋白质之间的相互作用,而 Alphafold3 预测的模型并不正确。这项全面的结构和功能研究为酶的合理再设计和在生物技术中的潜在应用奠定了基础。
Crystal structures of monomeric BsmI restriction endonuclease reveal coordinated sequential cleavage of two DNA strands.
BsmI, a thermophilic Type IIS restriction endonuclease from Bacillus stearothermophilus, presents a unique structural composition, housing two distinct active sites within a single monomer. Recognition of the non-symmetrical 5'-GAATGC-3' sequence enables precise cleavage of the top and bottom DNA strands. Synthetic biology interventions have led to the transformation of BsmI into Nb.BsmI, a nicking endonuclease. Here we introduce Nt*.BsmI, tailored for top-strand cleavage, which is inactive on standard double-stranded DNA, but active on bottom-strand nicked DNA, suggesting a sequential cleavage mechanism. Crystallographic structures of pre- and post-reactive complexes with cognate DNA show one major conformational change, a retractable loop possibly governing sequential active site accessibility. The x-ray structures reveal the position of the divalent metal ions in the active sites and the DNA:protein interactions, while the models predicted by Alphafold3 are incorrect. This comprehensive structural and functional study lays a foundation for rational enzyme redesign and potential applications in biotechnology.
期刊介绍:
Communications Biology is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the biological sciences. Research papers published by the journal represent significant advances bringing new biological insight to a specialized area of research.